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Nilay Maji

Publications and source records attributed to Nilay Maji.

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Enhanced Spin Lifetime and Long-Range Spin Transport in p-Silicon using Spin Gapless Semiconductor as Ferromagnetic Injector

Electrical spin injection and transport in silicon are central challenges for realizing semiconductor-based spintronic devices, particularly in p-type Si, where strong spin relaxation and interface effects often suppress detectable spin signals. Here, we report electrical spin injection, accumulation, and transport in lightly doped p-type silicon using the spin-gapless Heusler compound Mn$_2$CoAl as a ferromagnetic spin injector, separated from the p-Si channel by a thin MgO tunnel barrier in a lateral device geometry. Spin transport is systematically investigated through three-terminal (3-T) Hanle and four-terminal (4-T) nonlocal (NL) spin-valve and Hanle measurements. Clear Lorentzian Hanle signals are observed in the 3-T configuration from 5 K up to room temperature, yielding a spin lifetime of $\sim$0.68 ns at 300 K that increases to $\sim$4.11 ns at 5 K. Temperature-dependent analysis reveals a weak power-law dependence of the spin lifetime, indicating Bir--Aronov--Pikus--type spin relaxation mechanism. To validate genuine spin transport, NL spin-valve and Hanle measurements were performed, revealing well-defined spin-valve switching and controlled spin precession at 5 K. From NL Hanle fitting, a spin lifetime of $\sim$5.65 ns and a spin diffusion length of $\sim$0.82 $\mu$m are extracted, confirming diffusive long-range spin transport in the p-Si channel. Although NL signals diminish at elevated temperatures due to reduced interfacial spin polarization and thermal noise, the combined 3-T and 4-T results establish spin-gapless Mn$_2$CoAl as an effective spin injector for p-type silicon. These findings highlight the potential of spin-gapless semiconductors for improving spin injection efficiency and advancing Si-compatible spintronic devices.

cond-mat.other

Giant and Oscillatory Junction Magnetoresistance via RKKY-like Spin Coupling in Spin-Gapless Mn$_2$CoAl/SiO$_2$/p-Si Heterostructures

Here, we report spin-selective transport and exceptionally large positive junction magnetoresistance (JMR) in sputter-deposited Mn$_2$CoAl/native-SiO$_2$/p-Si heterostructures. Highly ordered inverse-Heusler Mn$_2$CoAl thin films with near-ideal XA chemical ordering (S$\approx$0.97) and a Curie temperature of $\sim$590 K are realized using magnetron sputtering process. The spin-gapless semiconducting nature of Mn$_2$CoAl is experimentally supported by a weakly temperature-dependent resistivity with a very small negative temperature coefficient of resistance ($\mathrm{TCR} \approx -4.2 \times 10^{-9}\,\Omega \cdot \mathrm{m} \cdot \mathrm{K}^{-1}$) and a nonsaturating linear magnetoresistance over a wide range of magnetic fields and temperatures. A giant positive JMR of $\sim$825% at 10 K and $\sim$134% at room temperature is observed despite the presence of only a single ferromagnetic electrode. Systematic variation of the SiO$_2$ tunnel barrier thickness reveals a reproducible oscillatory sign reversal of the JMR accompanied by a monotonic decay in magnitude. This behavior reflects thickness-dependent modulation of spin-selective tunneling mediated by phase-coherent interfacial carriers. It can be described phenomenologically by an RKKY-like functional form without invoking conventional metallic exchange interactions. These results identify Mn$_2$CoAl/native-SiO$_2$/p-Si heterostructures as robust and scalable platforms for room-temperature spin-selective transport, with potential applications in semiconductor-compatible spin filters, magnetic field sensors, and reconfigurable spintronic logic elements.

cond-mat.mes-hall